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Data from: Land use in mountain grasslands alters drought response and recovery of carbon allocation and plant-microbial interactions
负责人:
关键词:
carbohydrates;PLFA;stress tolerance;13C pulse labelling;belowground carbon allocation;land abandonment;nitrogen uptake;NLFA;resilience;resistance
DOI:
doi:10.5061/dryad.3s57p
摘要:
. 6. Synthesis. Our results suggest that resistance and resilience (i.e. recovery) of plant C dynamics and plant-microbial interactions are negatively relate
Data from: Process-based simulation of prairie growth
负责人:
Zilverberg, Cody
关键词:
APEX root:shoot ratio biomass simulation water stress interspecific competition
DOI:
doi:10.5061/dryad.h3fj0
摘要:
on and the environment, but process-based models that simulate animal-plant-soil interaction and ecosystem services in grazing lands are rare. In the U.S.A., APEX
Data from: Plant functional groups regulate soil respiration responses to nitrogen addition and mowing over a decade
负责人:
关键词:
soil pH;precipitation regime;Land-use change;plant community structure;soil CO2 flux;grassland
DOI:
doi:10.5061/dryad.tb850
摘要:
rs. The interaction of N addition with mowing had little effect on soil respiration. However, the significant effects of both N addition and mowing appeared
Data from: Plant, soil and microbial controls on grassland diversity restoration: a long-term, multi-site mesocosm experiment
负责人:
关键词:
plant-soil interactions;soil microbial community;Ecological restoration;soil;priority effects;grassland;nutrients;plant species composition
DOI:
doi:10.5061/dryad.v7t4q
摘要:
roles of various aboveground and belowground factors in the establishment of target species, to determine general constraints on grassland restoration. Eac
Data from: The mechanisms affecting seedling establishment in restored savanna understories are seasonally dependent
负责人:
关键词:
Scleria ciliata;Commelina erecta;Parthenocissus quinquefolia;Gymnopogon ambiguus;Pinus taeda;root competition;Aristida purpurascens var. tenuispica;Liatris virgata;Erigeron strigosus;Packera anonyma;Tephrosia virginiana;Hypericum gentianoides;Vaccinium arboreum;establishment limitation;Prunus umbellata;Sericocarpus tortifolius;Paspalum setaceum;Tragia urticifolia;Rubus argutus;Saccharum alopecuroides;plant life stage;Dichanthelium commutatum;Rhynchosia reniformis;Desmodium obtusum;Andropogon sp.;Rubus cuneifolius;Cornus florida;Stipulicida setacea;Lespedeza repens;Desmodium paniculatum var. paniculatum;Rhus copallinum;Land-use legacies;Potentilla canadensis;Quercus coccinea;Gelsemium sempervirens;Gamochaeta purpurea;Aristida tuberculosa;Cyperus plukenetii;Lactuca graminifolia;Dichanthelium sp.;Dioscorea villosa;Desmodium ciliare;Pityopsis graminifolia;Tragia urens;Silphium compositum;Lespedeza virginica;Callicarpa americana;Vernonia angustifolia;Carya tomentosa;Centrosema virginianum;Asclepias amplexicaulis;Viola sororia;Croton glandulosus;Desmodium strictum;Quercus velutina;Vitis rotundifolia;land-use history;Cyperus retrorsus;Smilax smallii;Helianthemum canadense;Eragrostis spectabilis;Carya;Elephantopus tomentosus;Gaylussacia dumosa;Aristolochia serpentaria;Pseudognaphalium obtusifolium;Lechea mucronata;Quercus laevis;Desmodium lineatum;Lonicera sempervirens;Desmodium marilandicum;Croptilon divaricatum;Chamaecrista fasciculata;Coreopsis major;Crataegus sp.;Ionactis linariifolia;Quercus laurifolia;belowground competition;Quercus margarettiae;Calystegia sp.;Cyperus filiculmis;Lespedeza hirta;Wahlenbergia marginata;Chimaphila maculata;Crocanthemum rosmarinifolium;Linaria canadensis;Liquidambar styraciflua;Tephrosia florida;Stylosanthes biflora;canopy thinning;Smilax glauca;Solidago odora;Clitoria mariana;Pinus palustris;Rubus flagellaris;Bonamia patens;Pteridium aquilinum;Helianthus divaricatus;Eupatorium compositifolium;Lespedeza cuneata;Vitis aestivalis;Viola sp.;Diospyros virginiana;Sassafras albidum;Sericocarpus asteroides;Polypremum procumbens;Euphorbia ipecacuanhae;Quercus incana;Piptochaetium avenaceum;Ilex vomitoria;Hieracium gronovii;Morella cerifera;Paspalum boscianum;Rhexia mariana;Robinia pseudoacacia;Styrax grandifolius;Quercus falcata;Solidago nemoralis;Euphorbia pubentissima;Aristida lanosa;Acalypha gracilens;Desmodium canescens;Carex;Vaccinium stamineum;Erechtites hieraciifolius;Conyza canadensis;Celtis tenuifolia;Chrysopsis gossypina;Symphyotrichum concolor;Toxicodendron pubescens;Campsis radicans;Liatris sp.;Acer rubrum;Solanum ptychanthum;Carya pallida;Eupatorium rotundifolium;Longleaf pine savanna;Eupatorium album;Liatris elegans;Galium sp. (pilosum\/hispidulum);Smilax bona-nox;Aristida condensata;Quercus stellata;Anthropocene;Quercus marilandica;Bulbostylis ciliatifolia;Dyschoriste oblongifolia;Dichanthelium sp.3;Ilex opaca;Prunus serotina;Digitaria cognata;Danthonia sericea;Galium pilosum;dispersal limitation;Chamaecrista nictitans subsp. nictitans;Eupatorium glaucescens;Quercus nigra;Penstemon australis;Ipomoea pandurata;Nyssa sylvatica;Eupatorium capillifolium;Hypericum hypericoides
DOI:
doi:10.5061/dryad.6450hv3
摘要:
le in limiting plant establishment. Yet, belowground competition is generally studied less than aboveground, especially in the context of land-use history
Data from: Spatial heterogeneity in soil nutrient supply modulates nutrient and biomass responses to multiple global change drivers in model
负责人:
关键词:
evenness;microcosm;diversity;Plantago lanceolata;productivity;nutrient heterogeneity;Lolium perenne;Holcus lanatus;Holocene;climate change;nutrient availability
DOI:
doi:10.5061/dryad.4m0c3
摘要:
of plant individuals and communities, it is virtually unknown how nutrient heterogeneity and global change drivers interact to affect plant per
Data from: Nitrogen deposition alters plant–fungal relationships: linking belowground dynamics to aboveground vegetation change
负责人:
关键词:
Deschampsia cespitosa;root fungi;nitrogen deposition;Geum rossii;454 pyrosequencing;ITS;Helotiales
DOI:
doi:10.5061/dryad.sv33f
摘要:
ed competitive interactions between plants, but may also be a result of microbial responses to N, particularly root-associated fungi (RAF), which are known to affect

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